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Yoo, Jung-Woo
Nano Spin Transport Lab.
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Suppression of antiferromagnetic order by strain-enhanced frustration in honeycomb cobaltate

Author(s)
Kim, Gye-HyeonPark, MijuSamanta, SubhasisChoi, UksamKang, BaekjuneSeo, UihyeonJi, GwangCheolNoh, SeunghyeonCho, Deok-YongYoo, Jung-WooOk, Jong MokKim, Heung-SikSohn, Chang Hee
Issued Date
2024-07
DOI
10.1126/sciadv.adn8694
URI
https://scholarworks.unist.ac.kr/handle/201301/83396
Citation
SCIENCE ADVANCES, v.10, no.27, pp.eadn8694
Abstract
Layered honeycomb cobaltates are predicted as promising for realizing the Kitaev quantum spin liquid, a many-body quantum entangled ground state characterized by fractional excitations. However, they exhibit antiferromagnetic ordering at low temperatures, hindering the expected quantum state. We demonstrate that controlling the trigonal distortion of CoO6 octahedra is crucial to suppress antiferromagnetic order through enhancing frustration in layered honeycomb cobaltates. Using heterostructure engineering on Cu3Co2SbO6 thin films, we adjust the trigonal distortion of CoO6 octahedra and the resulting trigonal crystal field. The original N & eacute;el temperature of 16 kelvin in bulk Cu3Co2SbO6 decreases (increases) to 7.8 kelvin (22.7 kelvin) in strained Cu3Co2SbO6 films by decreasing (increasing) the magnitude of the trigonal crystal fields. The first-principles calculation suggests the enhancement of geometrical frustration as the origin of the suppression of antiferromagnetism. This finding supports the potential of layered honeycomb cobaltate heterostructures and strain engineering in realizing extremely elusive quantum phases of matter.
Publisher
AMER ASSOC ADVANCEMENT SCIENCE
ISSN
2375-2548
Keyword
SPIN LIQUIDKITAEVSPECTRAMODEL

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